References
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Jackson S (1995) The potential of explosibility of coal dust mixtures in oxygen deficient mine
atmospheres. BE Thesis, The University of Queensland, Brisbane, pp 177–178
Kaymakci E, Didari V (2002) Relations between coal properties and spontaneous combustion
parameters. Turk J Eng Environ Sci 26:59–64
Mastalerz M, Glikson M (2000) In-situ analysis of solid bitumen in coal; examples from the Bowen
Basin and the Illinois Basin. Int J Coal Geol 42:207–220
Onifade M, Genc B (2019) Spontaneous combustion liability of coal and coal-shale: a review of
prediction methods. Int J Coal Sci Technol 6(2):151–168
Saffari A, Sereshki F, Ataei M (2019) A comprehensive study of effect of maceral content on
tendency of spontaneous coal combustion occurrence. J Inst Eng (India): Ser D, 100 (1):1–13
Sanyal A (1983) The role of coal macerals in combustion. J Inst Energy 92–95
Saxena R, Navale GKB, Chandra D, Prasad YVS (1990) Spontaneous combustion of some Permian
coal seams of India: an explanation based on microscopic and physic-chemical properties. In:
Jain KP, Tiwari RS (eds) Proceeding symptoms of vistas Indian palaeobotany, pp 58–82
Shibaoka M, Thomas CG, Young BC (1985) The influence of rank and maceral compositions on
combustion of pulverised coal. Proc. Int. Cof. Coal Sci. 665–669
Taylor GH, Teichmuller M, Davis A, Diessel CFK, Littke R, Robert P (1998) Organic petrology.
Bebruder Borntraeger, Berlin, p 704
Teichmuller M (1974) Uber neue Macerale der Liptinit–Gruppe und die Entstehung von Micrinit.
Fortschr Geol Rheinld u Westf 24:37–64
Walker R, Glikson M, Mastalerz M (2001) Relation between coal petrology and gas content in
Upper Newlands Seam, central Queensland, Australia. Int J Coal Geol 46: 83–92
125
Jackson S (1995) The potential of explosibility of coal dust mixtures in oxygen deficient mine
atmospheres. BE Thesis, The University of Queensland, Brisbane, pp 177–178
Kaymakci E, Didari V (2002) Relations between coal properties and spontaneous combustion
parameters. Turk J Eng Environ Sci 26:59–64
Mastalerz M, Glikson M (2000) In-situ analysis of solid bitumen in coal; examples from the Bowen
Basin and the Illinois Basin. Int J Coal Geol 42:207–220
Onifade M, Genc B (2019) Spontaneous combustion liability of coal and coal-shale: a review of
prediction methods. Int J Coal Sci Technol 6(2):151–168
Saffari A, Sereshki F, Ataei M (2019) A comprehensive study of effect of maceral content on
tendency of spontaneous coal combustion occurrence. J Inst Eng (India): Ser D, 100 (1):1–13
Sanyal A (1983) The role of coal macerals in combustion. J Inst Energy 92–95
Saxena R, Navale GKB, Chandra D, Prasad YVS (1990) Spontaneous combustion of some Permian
coal seams of India: an explanation based on microscopic and physic-chemical properties. In:
Jain KP, Tiwari RS (eds) Proceeding symptoms of vistas Indian palaeobotany, pp 58–82
Shibaoka M, Thomas CG, Young BC (1985) The influence of rank and maceral compositions on
combustion of pulverised coal. Proc. Int. Cof. Coal Sci. 665–669
Taylor GH, Teichmuller M, Davis A, Diessel CFK, Littke R, Robert P (1998) Organic petrology.
Bebruder Borntraeger, Berlin, p 704
Teichmuller M (1974) Uber neue Macerale der Liptinit–Gruppe und die Entstehung von Micrinit.
Fortschr Geol Rheinld u Westf 24:37–64
Walker R, Glikson M, Mastalerz M (2001) Relation between coal petrology and gas content in
Upper Newlands Seam, central Queensland, Australia. Int J Coal Geol 46: 83–92
